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Rheology and Microstructure Development of Hydrating-Tricalcium-Silicate (2021-12)

Implications for Additive Manufacturing in Construction

10.1016/j.cemconres.2021.106651

 Jones Scott,  Hipp Julie,  Allen Andrew,  Gagnon Cedric
Journal Article - Cement and Concrete Research, Vol. 152

Abstract

Dielectric RheoSANS measurements are conducted on hydrating triclinic and monoclinic tricalcium silicate pastes with and without a sucrose admixture to simultaneously probe the changing microstructure by small angle neutron scattering (SANS), rheology, and electrical conductivity. The average total surface area of nanoscale calcium silicate hydrate (C-S-H), determined from fractal models fitted to SANS data, at the setting time is estimated to be (17.1(56)) m2 cm−3, independent of C-S-H polymorph or retardation of the hydration reactions. The growth rate of C-S-H with respect to the degree of hydration of the triclinic tricalcium phase is approximately 48 % less than the monoclinic tricalcium silicate phase, a result that may be attributed to the increased number of fine grains in the monoclinic C3S paste. Developing an understanding between the microstructural changes of cement paste and engineering material properties is a critical first step toward engineering cement phase compositions.

10 References

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3 Citations

  1. Ji Yianliang, Pott Ursula, Mezhov Alexander, Rößler Christiane et al. (2024-11)
    Modelling and Experimental Study on Static Yield-Stress-Evolution and Structural Build-Up of Cement-Paste in Early-Stage of Cement Hydration
  2. Jiang Shangjin, Wang Yuntao, Hua Sudong, Yue Hongfei et al. (2024-08)
    Preparation and Performance Characterization of Low-Density 3D Printed Expanded Perlite-Foam-Concrete
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    Development and Performance Evaluation of Fibrous Pseudoplastic Quaternary Cement Systems for Aerial Additive Manufacturing

BibTeX
@article{jone_hipp_alle_gagn.2022.RaMDoHTS,
  author            = "Scott Z. Jones and Julie B. Hipp and Andrew J. Allen and Cedric V. Gagnon",
  title             = "Rheology and Microstructure Development of Hydrating-Tricalcium-Silicate: Implications for Additive Manufacturing in Construction",
  doi               = "10.1016/j.cemconres.2021.106651",
  year              = "2022",
  journal           = "Cement and Concrete Research",
  volume            = "152",
}
Formatted Citation

S. Z. Jones, J. B. Hipp, A. J. Allen and C. V. Gagnon, “Rheology and Microstructure Development of Hydrating-Tricalcium-Silicate: Implications for Additive Manufacturing in Construction”, Cement and Concrete Research, vol. 152, 2022, doi: 10.1016/j.cemconres.2021.106651.

Jones, Scott Z., Julie B. Hipp, Andrew J. Allen, and Cedric V. Gagnon. “Rheology and Microstructure Development of Hydrating-Tricalcium-Silicate: Implications for Additive Manufacturing in Construction”. Cement and Concrete Research 152 (2022). https://doi.org/10.1016/j.cemconres.2021.106651.